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July 8, 2024ACS Nano103 citations

Zwitterionic Eutectogels with High Ionic Conductivity for Environmentally Tolerant and Self-Healing Triboelectric Nanogenerators

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JYJianmin YangLCLi ChangHDHaitao Deng

Key Points

  • Zwitterionic eutectogels achieve an ionic conductivity of 15.7 mS cm–1, driven by mobile charge dissociation via cation-anion solvent interactions.
  • Coupling the eutectogel with polydimethylsiloxane yields a triboelectric nanogenerator with a maximum power density of 112 mW m–2 from −80 to 100 °C.
  • Electrostatic and hydrogen bonds confer self-healing properties, enabling resilient self-powered sensor operation for real-time human motion tracking.

Abstract

Eutectogels have garnered considerable attention for the development of wearable devices, owing to their inherent mechanical elasticity, ionic conductivity, affordability, and environmental compatibility. However, the low conductivity of existing eutectogels has impeded their progression in electronic applications. Here, we report a zwitterionic eutectogel with an impressive ionic conductivity of up to 15.7 mS cm–1. The incorporation of zwitterionic groups into the eutectogel creates ample mobile charges by dissociating the cation and anion of solvents, thereby yielding exceptional ionic conductivity. Moreover, the abundant electrostatic and hydrogen bonding interactions within the eutectogel endow it with prominent self-healing and adhesive properties. By integrating the eutectogel with a roughly patterned polydimethylsiloxane film, we have successfully constructed a triboelectric nanogenerator (TENG) with a maximum output power density of 112 mW m–2. This TENG is capable of generating stable electrical signals even in extreme temperature conditions ranging from −80 to 100 °C and effectively powering electronic devices. Furthermore, the assembled TENG displays high sensitivity as a self-powered sensor, enabling real-time and precise monitoring of signals derived from human motions. This study establishes a promising approach for the development of sustainable and multifunctional flexible electronics that are resilient in extreme environments.

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Cite This Study

Yang et al. (2024) studied this question.

synapsesocial.com/papers/68e60f70b6db6435875a2ad0https://doi.org/10.1021/acsnano.4c02661
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